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I use this classic perl one liner to replace strings in multiple files recursively

perl -pi -e 's/oldstring/newstring/g' `grep -irl oldstring *`

But this has failed me as I want to find the string:

'$user->primaryorganisation->id'

and replace with

$user->primaryorganisation->id

I can't seem to escape the string correctly for the line to run successfully.

Any help gratefully received!

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1  
You can save yourself one layer of escapes here by using a source file to replace the -e code: perl -pi source.pl .... –  TLP Jan 16 at 10:46

3 Answers 3

up vote 2 down vote accepted

Try this one. Lots of escapes. Go with TLPs suggestion and use a source file.

perl -pi -e "s/'\\\$user->primaryorganisation->id'/\\\$user->primaryorganisation->id/g" `grep -irl  "'\$user->primaryorganisation->id'" *`

Explanation:

  • three backslashes: the first two tell the shell to produce a literal backslash; the thrid one escapes the $ for the shell; that makes \$ for Perl, which needs the backslash to escape the variable interpolation
  • double quotes " to put single quotes ' inside them
  • one backslash and a dollar \$ for grep so the shell passes on a literal dollar sign
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To produce

...'...

you can generically use

'...'\''...'

As such,

s/'(\$user->primaryorganisation->id)'/$1/g

becomes

's/'\''(\$user->primaryorganisation->id)'\''/$1/g'

so

find -type f \
    -exec perl -i -pe's/'\''(\$user->primaryorganisation->id)'\''/$1/g' {} +
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When you want to represent a single quote in a perl but can't because the one-liner uses single quotes itself, you can use \047, the octal code for single quote. So, this should work:

s/\047(\$user->primaryorganisation->id)\047/$1/g

I recommend Minimal Perl by Maher for more-than-you-wanted-to-know about the art of one-lining perl.

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